WO2021236720A1 - Extended solid angle turbidity sensor - Google Patents

Extended solid angle turbidity sensor Download PDF

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Publication number
WO2021236720A1
WO2021236720A1 PCT/US2021/033083 US2021033083W WO2021236720A1 WO 2021236720 A1 WO2021236720 A1 WO 2021236720A1 US 2021033083 W US2021033083 W US 2021033083W WO 2021236720 A1 WO2021236720 A1 WO 2021236720A1
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Prior art keywords
sensor array
linear
array
turbidity
linear sensor
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PCT/US2021/033083
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French (fr)
Inventor
Kevin Flanagan
Ronald METZGER
Kyle LOGES
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YSI Inc
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YSI Inc
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Priority to KR1020227040421A priority Critical patent/KR102757938B1/en
Priority to EP21807774.1A priority patent/EP4153970B1/en
Priority to CA3178563A priority patent/CA3178563C/en
Priority to JP2022571196A priority patent/JP7451767B2/en
Priority to CN202180036389.3A priority patent/CN115667886B/en
Priority to AU2021276375A priority patent/AU2021276375B2/en
Priority to BR112022023418-0A priority patent/BR112022023418B1/en
Priority to ES21807774T priority patent/ES3039451T3/en
Publication of WO2021236720A1 publication Critical patent/WO2021236720A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • G01N21/62Systems in which the material investigated is excited whereby it emits light or causes a change in wavelength of the incident light
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    • G01N21/64Fluorescence; Phosphorescence
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    • G01N21/64Fluorescence; Phosphorescence
    • G01N2021/6491Measuring fluorescence and transmission; Correcting inner filter effect
    • GPHYSICS
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    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
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Definitions

  • This invention relates to a sensor for measuring the quality of water; and more particularly, to a turbidity sensor for measuring the quality of water.
  • turbidity sensing techniques suffer from poor sensitivity (especially field-deployable sensors) stemming from poor/inefficient capture of scattered signal (solid angle).
  • Existing turbidity sensors typically employ a single excitation light source and a single, or point-like emission receiver, utilizing a photosensitive element. Regardless of the particular photosensitive element or excitation light source used, the current turbidity sensors known in the art are not opto-mechanically configured for efficient capture of solid angle resulting in compromised limit of detection for turbidity.
  • the difficulty with measuring scattering-based signals is the spatial/directional nature of randomly scattered optical radiation.
  • the spatial distribution of scattered radiation of a single turbid particle is well approximated by a sphere, resulting in 4p [steradians] solid angle of scattered radiation (See Fig. 1).
  • To optimally capture such a turbidity signal would require a photosensitive area that closely matches the radiation pattern, i.e., a photosensitive area in the shape of a spherical shell. See Fig. 1 . In view of this, there is a need in the art for a better turbidity sensor.
  • the turbidity measurement system includes a sample assembly that contains a plurality of samples, a light source that illuminates the sample assembly, and a light detection system that includes a two-dimensional light-sensitive array.
  • the light-sensitive array is simultaneously exposed to light transmitted through each of the samples in the sample assembly.
  • the exposure is analyzed to determine a mean transmitted light intensity for each sample and to calculate a turbidity value for each sample based on its mean transmitted light intensity.
  • Multiple exposures may be taken during a measurement period so as to obtain time-resolved turbidity measurements of the samples.
  • the temperature of the samples may be varied during the measurement period so as to measure turbidity as a function of temperature.
  • the present invention aims to greatly enhance the captured solid angle thereby significantly enhancing the sensitivity of turbidity measurements.
  • the sensor under consideration incorporates (insofar that is practicable in a field-rugged sensor) many of the features exhibited in the idealized long-cylinder geometry.
  • the present invention employs a linear photodiode array (the proposed approach is not limited to photodiode technology, e.g., a linear CCD or CMOS array could be used as well).
  • the linear array allows ample room for biofouling counter measures such as motorized wiping.
  • linear sensor arrays are currently available as relatively inexpensive commercial-of-the-shelf (COTS) components.
  • COTS commercial-of-the-shelf
  • the key to this invention pertains specifically to the opto-mechanical configuration which utilizes a wide, linear array along the length of the quasi- collimated light source for enhanced signal capture. Additionally, the design allows for the capture of back scattered radiation — all in a single embodiment
  • the present design is compatible with non-intensity-based determinations of turbidity. These measurements are spatially dependent, the main idea being that an optical signal will undergo an attenuation across the linear array, following Beer’s law, thereby creating a “spatial gradient”. This spatial gradient contains information regarding the concentration of the turbidity.
  • the non-intensity-based measurement is immune to “drift” of the excitation source.
  • the spatial gradient is unaffected by moderate changes in the intensity of the excitation source, e.g., LED intensity degradation through the course of use, or a change in optical power due to thermal effects.
  • the “spatial gradient” method according to the present invention enables real time, inner filter effect (IFE) correction, which greatly enhances high-concentration sensing range. .
  • IFE inner filter effect
  • a known technique of inner filter correction involves post processing via lab analysis after a field deployment.
  • the “spatial gradient” method according to the present invention also allows for certain types of interference correction not achievable with amplitude- based techniques known in the art.
  • the above “spatial gradient” method requires that each optical element in the array be individually addressable.
  • there is a possible variant of the design that involves connecting all of the linear array elements in a parallel configuration which would preclude the possibility of individual addressability.
  • such a design variant could be modified to include a transmission photodiode (located at the end of the array, opposite of the source) which would restore the sensor’s ability to perform drift correction and IFE correction.
  • the present invention may include, or take the form of, apparatus featuring a signal processor or processing module configured to: receive signaling containing information about light reflected off suspended matter in a liquid and sensed by a linear sensor array having rows and columns of optical elements; and determine corresponding signaling containing information about a concentration of parameter of the liquid, based upon the signaling received
  • the apparatus may include one or more of the following additional features:
  • the parameter may include turbidity of the liquid.
  • the apparatus may include the linear sensor array.
  • the linear sensor array may include a linear photodiode array.
  • the linear sensor array may include a linear CCD array.
  • the linear sensor array may include a linear CMOS array.
  • the linear sensor array may include a closed cylinder sensor array having a three-dimensional cylindrical array of the rows and columns of the optical elements.
  • the apparatus may be a turbidity sensor.
  • the apparatus may include a quasi-collimated light source having a length and being configured to provide the light, including quasi-collimated light, along a corresponding length of the linear sensor array.
  • the signal processor or processing module may be configured to determine the parameter based upon an attenuation of an optical signal sensed across the linear sensor array.
  • the linear sensor array may include a two-dimensional array of optical elements that are individually addressable.
  • the signal processor or processing module may be configured to determine the turbidity based upon a spatial gradient of an optical signal sensed across the linear sensor array that contains information about the concentration of the turbidity.
  • the optical elements may be individually addressable by the signal processor or processing module.
  • Either the rows or the columns of the optical elements may be connected in parallel and addressable by the signal processor or processing module; the apparatus may include a transmission photodiode located at an end of the linear sensor array, opposite the light source, configured to respond to the light reflected off the suspended matter and provide transmission photodiode signaling containing information about the same; and the signal processor or processing module may be configured to receive the photodiode signaling and correct the corresponding signaling for drift or the inner filter effect.
  • the present invention may include a turbidity sensor featuring a quasi-collimated light source, a linear sensor array and a signal processor or processing module.
  • the quasi-collimated light source has a length and may be configured to provide quasi-collimated light to a liquid sample.
  • the linear sensor array may include rows and columns of optical elements and be configured to sense light reflected off suspended matter in the liquid sample along the length of the quasi-collimated light source and provide signaling containing information about the light reflected off the suspended matter.
  • the signal processor or processing module may be configured to: receive the signaling; and determine corresponding signaling containing information about a concentration of turbidity of the liquid, based upon the signaling received
  • the turbidity sensor may also include one or more of the features set forth above.
  • the present invention may include a method, featuring: receiving, with a signal processor or processing module, signaling containing information about light reflected off suspended matter in a liquid and sensed by a linear sensor array having rows and columns of optical elements; and determining, with the signal processor or processing module, corresponding signaling containing information about a concentration of a parameter of the liquid, based upon the signaling received
  • the method may also include one or more of the features set forth above.
  • Computer-readable Storage Medium According to some embodiments of the present invention, the present invention may also take the form of a computer-readable storage medium having computer-executable components for performing the steps of the aforementioned method.
  • the computer-readable storage medium may also include one or more of the features set forth above.
  • the present invention offers distinct advantages over the current known techniques in the prior art, as follows:
  • a linear sensor array provides a much larger overall active area to capture scattered rays. More importantly, the active area is larger in the dimension that matters most, along the direction of the quasi-collimated excitation source. Additionally, a wider linear array is preferred over a thin one for reasons stated above, increased active area. However, there is a limit of diminishing return regarding the width, i.e., an array width that does not roughly match the diameter of the excitation beam appears non-ideal.
  • the present invention enables measurement of backscattered radiation (in addition to the radially emitted side scatter) - all in a single sensing embodiment.
  • Figure 1 is a diagram of a spatial distribution of scattered radiation of a single turbid particle that is approximated by a sphere, resulting in 4p [steradians] solid angle of scattered radiation that is known in the art.
  • Figure 2A is a block diagram of apparatus, including a turbidity sensor, according to some embodiments of the present invention.
  • Figure 2B is a block diagram of a linear sensor array having rows and columns of optical elements, according to some embodiments of the present invention.
  • Figure 3 is a three dimension perspective view of a quasi-collimated light source that provides a quasi-collimated light in relation to a linear sensor array, according to some embodiments of the present invention.
  • Figure 4 is a side view of that shown in Figure 3 showing captured backscatter radiation by the linear sensor array, according to some embodiments of the present invention.
  • Figure 5 is a graph of relative sensor response versus relative concentration, e.g., showing a sensitivity comparison of the assignee's contemporary EXO turbidity sensor (solid line with dots) vs. the linear array turbidity sensor (solid line). Note that the graph shows simulated data based on a physical model of the design according to the present invention.
  • Figure 6A is an isometric view showing of a three-dimensional rendering of solid angle capture for an idealized long-cylinder shell geometry, e.g., such as a 3-D cylindrical linear sensor array, according to the present invention.
  • Figure 6B is a cross-sectional view showing of the idealized long-cylinder shell geometry, e.g., such as the 3-D cylindrical linear sensor array.
  • FIG. 2 shows apparatus 10, including a turbidity sensor, according to the present invention having a quasi-collimated light source 20, a linear sensor array 30, and a signal processor or processing module 40.
  • the signal processor or processing module 40 may be configured to receive signaling containing information about light Lr reflected off suspended matter in a liquid and sensed by the linear sensor array 30 having rows and columns of optical elements (r1 , d ; r1 , c2; r1 , c3; r1 , c4; r1 , c5; r1 , c6; r1 , c7; r1 , c8; r1 , cn; r2, d ; r2, c2; r2, c3; r2, c4; r2, c5; r2, c6; r2, c7; r2, c8; r2, cn; r3, d ; r3, c2; r3, c3; r3, c4; r3, c5; r3, c6; r3, c7; r3, c8; r3, cn;
  • the parameter may include the concentration of turbidity in the liquid
  • the apparatus may be, or take the form of, a turbidity sensor.
  • the scope of the invention is not intended to be limited to any particular type or kind of parameter being sensed in a liquid either now known or later developed in the future.
  • the Linear Sensor Array 30 may include the linear sensor array 30, e.g., such as a linear photodiode array, a linear charge-coupled device (CCD) array, a linear CMOS array.
  • the linear sensor array 30 may include a two- dimensional array of rows and columns of optical elements, e.g., like that shown in Figure 2B, that are individually addressable. Linear sensor arrays are known in the art, and the scope of the invention is not intended to be limited to any particular type or kind thereof either now known or later developed in the future.
  • linear sensors arrays are disclosed in the following US Patent nos. 9,020,202; 8,022,349; 7,956,341 ; 7,040,538; 5,252,818; and 4,193,057, which are all hereby incorporated by reference.
  • the apparatus 10 may include the source 20 configured to provide the light Lc, including quasi-collimated light, along a corresponding length of the linear sensor array 30, e.g., as shown in Figures 2 and 3, e.g., through a liquid sample arranged in relation to the light source 20 and the linear sensor array 30 so as to reflect the light Lr off suspended matter in the liquid sample being monitored or tested onto the linear sensor array 30.
  • the light Lr may be reflected radially (Fig. 3) and backwards (Fig. 4), i.e., backscattered reflected light or radiation.
  • FIG. 4 shows captured backscatter radiation by the linear sensor array 30, where backscattered radiation is understood to be light reflected of the suspended matter in the liquid sample that travels backwards, consistent with that shown.
  • the Signal Processor or Processing Module 40 may be configured to determine the parameter, including turbidity, based upon an attenuation of an optical signal sensed across the linear sensor array, including its length and width.
  • Techniques for sensing the attenuation of the optical signal e.g., in relation to the concentration of turbidity in the liquid, are known in the art, and the scope of the invention is not intended to be limited to any particular type or kind thereof either now known or later developed in the future.
  • the signal processor or processing module 40 may be configured to determine the concentration of turbidity based upon a spatial gradient of the optical signal sensed across the linear sensor array.
  • concentration of turbidity based upon a spatial gradient of the optical signal sensed across the linear sensor array.
  • techniques for determining the concentration of turbidity in a liquid based upon a spatial gradient of an optical signal are known in the art, e.g., consistent with that set forth herein re PCT/US2008/059575, which is hereby incorporated by reference in its entirety, and the scope of the invention is not intended to be limited to any particular type or kind of technique either now known or later developed in the future.
  • either the rows or the columns of the optical elements may be connected in parallel and addressable by the signal processor or processing module 40; the apparatus 10 may include a transmission photodiode 30a located at an end of the linear sensor array 30, opposite the light source 20, configured to respond to the light L reflected off the suspended matter and provide transmission photodiode signaling containing information about the same; and the signal processor or processing module 40 may be configured to receive the photodiode signaling and correct the corresponding signaling for drift or the inner filter effect.
  • the functionality of the signal processor or processing module 40 may be implemented using hardware, software, firmware, or a combination thereof.
  • the signal processor 40 would include one or more microprocessor-based architectures having, e. g., at least one signal processor or microprocessor.
  • One skilled in the art would be able to program with suitable program code such a microcontroller-based, or microprocessor-based, implementation to perform the signal processing functionality disclosed herein without undue experimentation.
  • the apparatus 10 may also include, e.g., other signal processor circuits or components generally indicated 50, including random access memory or memory module (RAM) and/or read only memory (ROM), input/output devices and control, and data and address buses connecting the same, and/or at least one input processor and at least one output processor, e.g., which would be appreciate by one skilled in the art.
  • RAM random access memory or memory module
  • ROM read only memory
  • the signal processor may include, or take the form of, some combination of a signal processor and at least one memory including a computer program code, where the signal processor and at least one memory are configured to cause the system to implement the functionality of the present invention, e.g., to respond to signaling received and to determine the corresponding signaling, based upon the signaling received.
  • Figure 6A and 6B The 3D Cylindrical Linear Sensor Array 60
  • the apparatus 10 may include a closed cylinder sensor array 60 having a three-dimensional cylindrical array of the rows and columns of the optical elements and a length L, e.g., as shown in Figure 6A.
  • the 3-D cylindrical linear sensor array 32 configured to capture light reflected off the suspended matter in the liquid along its length L and 360 degrees radially about its longitudinal axis.
  • IFE Inner Filter Effect
  • the IFE is a fluorescence spectroscopy phenomenon, e.g., where there is a decrease in fluorescence emission seen in concentrated solutions due to the absorption of exciting light by the fluorophore that is close to the incident beam and which significantly diminishes light that reaches the sample further away from it.
  • techniques for correcting for the IFE are known in the art, and the scope of the invention is not intended to be limited to any particular type or kind thereof either now known or later developed in the future.
  • the present invention has applications, e.g., in the basic parameter of water quality monitoring for freshwater applications (e.g., where turbidity is one of the “big five”), as well as drinking water monitoring.

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Abstract

A turbidity sensor featuring a signal processor or processing module configured to: receive signaling containing information about light reflected off suspended matter in a liquid and sensed by a linear sensor array having rows and columns of optical elements; and determine corresponding signaling containing information about a concentration of turbidity of the liquid, based upon the signaling received

Description

EXTENDED SOLID ANGLE TURBIDITY SENSOR
CROSS-REFERENCE TO RELATED APPLICATIONS This application claims benefit to provisional patent application serial no. 63/027,587 (911 -023.9-1 -1/N-YSI-0045US01 ), filed 20 May 2020; 63/028,013 (911 - 023.010-1 -1 /N-YSI-0046US02), filed 21 May 2020, and 63/028,723 (911 -023.011 -1 - 1/N-YSI-0047US02), filed 22 May 2020, which are all incorporated by reference in its entirety.
BACKGROUND OF THE INVENTION
1 . Field of Invention
This invention relates to a sensor for measuring the quality of water; and more particularly, to a turbidity sensor for measuring the quality of water.
2. Description of Related Art
Traditional turbidity sensing techniques suffer from poor sensitivity (especially field-deployable sensors) stemming from poor/inefficient capture of scattered signal (solid angle). Existing turbidity sensors typically employ a single excitation light source and a single, or point-like emission receiver, utilizing a photosensitive element. Regardless of the particular photosensitive element or excitation light source used, the current turbidity sensors known in the art are not opto-mechanically configured for efficient capture of solid angle resulting in compromised limit of detection for turbidity.
The difficulty with measuring scattering-based signals is the spatial/directional nature of randomly scattered optical radiation. Consider for the moment the excitation of a single turbid particle. For typical environmental water quality monitoring conditions, the spatial distribution of scattered radiation of a single turbid particle is well approximated by a sphere, resulting in 4p [steradians] solid angle of scattered radiation (See Fig. 1). To optimally capture such a turbidity signal would require a photosensitive area that closely matches the radiation pattern, i.e., a photosensitive area in the shape of a spherical shell. See Fig. 1 . In view of this, there is a need in the art for a better turbidity sensor.
Moreover, and by way of example, PCT/US2008/059575, filed 7 April 2008, entitled "System and method for high-throughput turbidity measurements," discloses techniques for turbidity measurements using a spatial-gradient method. The turbidity measurement system includes a sample assembly that contains a plurality of samples, a light source that illuminates the sample assembly, and a light detection system that includes a two-dimensional light-sensitive array. The light-sensitive array is simultaneously exposed to light transmitted through each of the samples in the sample assembly. The exposure is analyzed to determine a mean transmitted light intensity for each sample and to calculate a turbidity value for each sample based on its mean transmitted light intensity. Multiple exposures may be taken during a measurement period so as to obtain time-resolved turbidity measurements of the samples. The temperature of the samples may be varied during the measurement period so as to measure turbidity as a function of temperature.
SUMMARY OF THE INVENTION
In summary, the present invention aims to greatly enhance the captured solid angle thereby significantly enhancing the sensitivity of turbidity measurements.
The sensor under consideration incorporates (insofar that is practicable in a field-rugged sensor) many of the features exhibited in the idealized long-cylinder geometry. The present invention employs a linear photodiode array (the proposed approach is not limited to photodiode technology, e.g., a linear CCD or CMOS array could be used as well). The linear array allows ample room for biofouling counter measures such as motorized wiping. Additionally, linear sensor arrays are currently available as relatively inexpensive commercial-of-the-shelf (COTS) components. The key to this invention pertains specifically to the opto-mechanical configuration which utilizes a wide, linear array along the length of the quasi- collimated light source for enhanced signal capture. Additionally, the design allows for the capture of back scattered radiation — all in a single embodiment
The present design is compatible with non-intensity-based determinations of turbidity. These measurements are spatially dependent, the main idea being that an optical signal will undergo an attenuation across the linear array, following Beer’s law, thereby creating a “spatial gradient”. This spatial gradient contains information regarding the concentration of the turbidity.
The non-intensity-based measurement is immune to “drift” of the excitation source. In other words, the spatial gradient is unaffected by moderate changes in the intensity of the excitation source, e.g., LED intensity degradation through the course of use, or a change in optical power due to thermal effects.
The “spatial gradient” method according to the present invention enables real time, inner filter effect (IFE) correction, which greatly enhances high-concentration sensing range. . (In comparison, a known technique of inner filter correction involves post processing via lab analysis after a field deployment.)
Additionally, the “spatial gradient” method according to the present invention also allows for certain types of interference correction not achievable with amplitude- based techniques known in the art. The above “spatial gradient” method requires that each optical element in the array be individually addressable. However, there is a possible variant of the design that involves connecting all of the linear array elements in a parallel configuration which would preclude the possibility of individual addressability. However, such a design variant could be modified to include a transmission photodiode (located at the end of the array, opposite of the source) which would restore the sensor’s ability to perform drift correction and IFE correction.
Specific Embodiments
According to some embodiments, the present invention may include, or take the form of, apparatus featuring a signal processor or processing module configured to: receive signaling containing information about light reflected off suspended matter in a liquid and sensed by a linear sensor array having rows and columns of optical elements; and determine corresponding signaling containing information about a concentration of parameter of the liquid, based upon the signaling received The apparatus may include one or more of the following additional features: The parameter may include turbidity of the liquid.
The apparatus may include the linear sensor array.
The linear sensor array may include a linear photodiode array.
The linear sensor array may include a linear CCD array.
The linear sensor array may include a linear CMOS array.
The linear sensor array may include a closed cylinder sensor array having a three-dimensional cylindrical array of the rows and columns of the optical elements. The apparatus may be a turbidity sensor.
The apparatus may include a quasi-collimated light source having a length and being configured to provide the light, including quasi-collimated light, along a corresponding length of the linear sensor array.
The signal processor or processing module may be configured to determine the parameter based upon an attenuation of an optical signal sensed across the linear sensor array.
The linear sensor array may include a two-dimensional array of optical elements that are individually addressable.
The signal processor or processing module may be configured to determine the turbidity based upon a spatial gradient of an optical signal sensed across the linear sensor array that contains information about the concentration of the turbidity.
The optical elements may be individually addressable by the signal processor or processing module.
Either the rows or the columns of the optical elements may be connected in parallel and addressable by the signal processor or processing module; the apparatus may include a transmission photodiode located at an end of the linear sensor array, opposite the light source, configured to respond to the light reflected off the suspended matter and provide transmission photodiode signaling containing information about the same; and the signal processor or processing module may be configured to receive the photodiode signaling and correct the corresponding signaling for drift or the inner filter effect.
According to some embodiments, the present invention may include a turbidity sensor featuring a quasi-collimated light source, a linear sensor array and a signal processor or processing module. The quasi-collimated light source has a length and may be configured to provide quasi-collimated light to a liquid sample. The linear sensor array may include rows and columns of optical elements and be configured to sense light reflected off suspended matter in the liquid sample along the length of the quasi-collimated light source and provide signaling containing information about the light reflected off the suspended matter. The signal processor or processing module may be configured to: receive the signaling; and determine corresponding signaling containing information about a concentration of turbidity of the liquid, based upon the signaling received The turbidity sensor may also include one or more of the features set forth above.
The Method
According to some embodiments, the present invention may include a method, featuring: receiving, with a signal processor or processing module, signaling containing information about light reflected off suspended matter in a liquid and sensed by a linear sensor array having rows and columns of optical elements; and determining, with the signal processor or processing module, corresponding signaling containing information about a concentration of a parameter of the liquid, based upon the signaling received
The method may also include one or more of the features set forth above. Computer-readable Storage Medium According to some embodiments of the present invention, the present invention may also take the form of a computer-readable storage medium having computer-executable components for performing the steps of the aforementioned method. The computer-readable storage medium may also include one or more of the features set forth above.
Advantages
The present invention offers distinct advantages over the current known techniques in the prior art, as follows:
1) The optimized capture of solid angle greatly enhances the signal sensitivity thereby significantly enhancing the minimum limit of detection for turbidity. A linear sensor array provides a much larger overall active area to capture scattered rays. More importantly, the active area is larger in the dimension that matters most, along the direction of the quasi-collimated excitation source. Additionally, a wider linear array is preferred over a thin one for reasons stated above, increased active area. However, there is a limit of diminishing return regarding the width, i.e., an array width that does not roughly match the diameter of the excitation beam appears non-ideal.
2) The present invention enables measurement of backscattered radiation (in addition to the radially emitted side scatter) - all in a single sensing embodiment.
3) The distance between the quasi-columnar excitation source to the linear sensor array was minimized as this also enhances sensitivity in addition to sensing range. BRIEF DESCRIPTION OF THE DRAWING
The drawing, which are not necessarily drawn to scale, includes Figures 1 - 6B, as follows:
Figure 1 is a diagram of a spatial distribution of scattered radiation of a single turbid particle that is approximated by a sphere, resulting in 4p [steradians] solid angle of scattered radiation that is known in the art.
Figure 2A is a block diagram of apparatus, including a turbidity sensor, according to some embodiments of the present invention.
Figure 2B is a block diagram of a linear sensor array having rows and columns of optical elements, according to some embodiments of the present invention.
Figure 3 is a three dimension perspective view of a quasi-collimated light source that provides a quasi-collimated light in relation to a linear sensor array, according to some embodiments of the present invention.
Figure 4 is a side view of that shown in Figure 3 showing captured backscatter radiation by the linear sensor array, according to some embodiments of the present invention.
Figure 5 is a graph of relative sensor response versus relative concentration, e.g., showing a sensitivity comparison of the assignee's contemporary EXO turbidity sensor (solid line with dots) vs. the linear array turbidity sensor (solid line). Note that the graph shows simulated data based on a physical model of the design according to the present invention.
Figure 6A is an isometric view showing of a three-dimensional rendering of solid angle capture for an idealized long-cylinder shell geometry, e.g., such as a 3-D cylindrical linear sensor array, according to the present invention. Figure 6B is a cross-sectional view showing of the idealized long-cylinder shell geometry, e.g., such as the 3-D cylindrical linear sensor array.
To reduce clutter in the drawing, each Figure in the drawing does not necessarily include every reference label for every element shown therein.
DETAILED DESCRIPTION OF BEST MODE OF THE INVENTION
Figure 2 shows apparatus 10, including a turbidity sensor, according to the present invention having a quasi-collimated light source 20, a linear sensor array 30, and a signal processor or processing module 40.
The signal processor or processing module 40 may be configured to receive signaling containing information about light Lr reflected off suspended matter in a liquid and sensed by the linear sensor array 30 having rows and columns of optical elements (r1 , d ; r1 , c2; r1 , c3; r1 , c4; r1 , c5; r1 , c6; r1 , c7; r1 , c8; r1 , cn; r2, d ; r2, c2; r2, c3; r2, c4; r2, c5; r2, c6; r2, c7; r2, c8; r2, cn; r3, d ; r3, c2; r3, c3; r3, c4; r3, c5; r3, c6; r3, c7; r3, c8; r3, cn; ...; rn, d ; rn, c2; rn, c3; rn, c4; rn, c5; rn, c6; rn, c7; rn, c8; ...; rn, cn); and determine corresponding signaling containing information about a concentration of parameter of the liquid, based upon the signaling received
The Parameter
By way of example, the parameter may include the concentration of turbidity in the liquid, and the apparatus may be, or take the form of, a turbidity sensor. However, the scope of the invention is not intended to be limited to any particular type or kind of parameter being sensed in a liquid either now known or later developed in the future.
The Linear Sensor Array 30 By way of example, the apparatus 10 may include the linear sensor array 30, e.g., such as a linear photodiode array, a linear charge-coupled device (CCD) array, a linear CMOS array. In particular, the linear sensor array 30 may include a two- dimensional array of rows and columns of optical elements, e.g., like that shown in Figure 2B, that are individually addressable. Linear sensor arrays are known in the art, and the scope of the invention is not intended to be limited to any particular type or kind thereof either now known or later developed in the future.
By way of example, linear sensors arrays are disclosed in the following US Patent nos. 9,020,202; 8,022,349; 7,956,341 ; 7,040,538; 5,252,818; and 4,193,057, which are all hereby incorporated by reference.
Figures 3 and 4
By way of example, the apparatus 10 may include the source 20 configured to provide the light Lc, including quasi-collimated light, along a corresponding length of the linear sensor array 30, e.g., as shown in Figures 2 and 3, e.g., through a liquid sample arranged in relation to the light source 20 and the linear sensor array 30 so as to reflect the light Lr off suspended matter in the liquid sample being monitored or tested onto the linear sensor array 30. For example, the light Lr may be reflected radially (Fig. 3) and backwards (Fig. 4), i.e., backscattered reflected light or radiation. As a person skilled in the art would appreciate, quasi-collimated light sources are known in the art, and the scope of the invention is not intended to be limited to any particular type or kind thereof either now known or later developed in the future. Figure 4 shows captured backscatter radiation by the linear sensor array 30, where backscattered radiation is understood to be light reflected of the suspended matter in the liquid sample that travels backwards, consistent with that shown.
The Signal Processor or Processing Module 40 By way of example, the signal processor or processing module 40 may be configured to determine the parameter, including turbidity, based upon an attenuation of an optical signal sensed across the linear sensor array, including its length and width. Techniques for sensing the attenuation of the optical signal, e.g., in relation to the concentration of turbidity in the liquid, are known in the art, and the scope of the invention is not intended to be limited to any particular type or kind thereof either now known or later developed in the future.
By way of example, the signal processor or processing module 40 may be configured to determine the concentration of turbidity based upon a spatial gradient of the optical signal sensed across the linear sensor array. As a person skilled in the art would appreciate, techniques for determining the concentration of turbidity in a liquid based upon a spatial gradient of an optical signal are known in the art, e.g., consistent with that set forth herein re PCT/US2008/059575, which is hereby incorporated by reference in its entirety, and the scope of the invention is not intended to be limited to any particular type or kind of technique either now known or later developed in the future. In an alternative embodiment, either the rows or the columns of the optical elements may be connected in parallel and addressable by the signal processor or processing module 40; the apparatus 10 may include a transmission photodiode 30a located at an end of the linear sensor array 30, opposite the light source 20, configured to respond to the light L reflected off the suspended matter and provide transmission photodiode signaling containing information about the same; and the signal processor or processing module 40 may be configured to receive the photodiode signaling and correct the corresponding signaling for drift or the inner filter effect.
Implementation of Signal Processing Functionality By way of example, the functionality of the signal processor or processing module 40 may be implemented using hardware, software, firmware, or a combination thereof. In a typical software implementation, the signal processor 40 would include one or more microprocessor-based architectures having, e. g., at least one signal processor or microprocessor. One skilled in the art would be able to program with suitable program code such a microcontroller-based, or microprocessor-based, implementation to perform the signal processing functionality disclosed herein without undue experimentation.
The scope of the invention is not intended to be limited to any particular implementation using technology either now known or later developed in the future. The scope of the invention is intended to include implementing the functionality of the signal processor(s) as stand-alone processor, signal processor, or signal processor module, as well as separate processor or processor modules, as well as some combination thereof. By way of example, the apparatus 10 may also include, e.g., other signal processor circuits or components generally indicated 50, including random access memory or memory module (RAM) and/or read only memory (ROM), input/output devices and control, and data and address buses connecting the same, and/or at least one input processor and at least one output processor, e.g., which would be appreciate by one skilled in the art.
By way of further example, the signal processor may include, or take the form of, some combination of a signal processor and at least one memory including a computer program code, where the signal processor and at least one memory are configured to cause the system to implement the functionality of the present invention, e.g., to respond to signaling received and to determine the corresponding signaling, based upon the signaling received.
Figure 6A and 6B: The 3D Cylindrical Linear Sensor Array 60
By way of example, the apparatus 10 may include a closed cylinder sensor array 60 having a three-dimensional cylindrical array of the rows and columns of the optical elements and a length L, e.g., as shown in Figure 6A.
In Figure 6A, the 3-D cylindrical linear sensor array 32 configured to capture light reflected off the suspended matter in the liquid along its length L and 360 degrees radially about its longitudinal axis.
As a person skilled in the art would appreciate, common/practical light sources including LEDs, laser diodes or broad-band lamps are often configured to provide a columnar or quasi-columnar optical radiation pattern for which the ideal photosensitive area takes the shape of a long, cylindrical shell, capturing rays perpendicular to the excitation column. According to the inventor at the time of this patent application filing, there are no commercially available “closed-cylinder” sensor arrays.
Inner Filter Effect (IFE) As a person skilled in the art would appreciate, the IFE is a fluorescence spectroscopy phenomenon, e.g., where there is a decrease in fluorescence emission seen in concentrated solutions due to the absorption of exciting light by the fluorophore that is close to the incident beam and which significantly diminishes light that reaches the sample further away from it. As a person skilled in the art would appreciate, techniques for correcting for the IFE are known in the art, and the scope of the invention is not intended to be limited to any particular type or kind thereof either now known or later developed in the future.
Applications
The present invention has applications, e.g., in the basic parameter of water quality monitoring for freshwater applications (e.g., where turbidity is one of the “big five”), as well as drinking water monitoring.
The Scope of the Invention
While the invention has been described with reference to exemplary embodiments, it will be understood by those skilled in the art that various changes may be made, and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment(s) disclosed herein as the best mode contemplated for carrying out this invention.

Claims

WHAT IS CLAIMED IS:
1 . Apparatus comprising: a signal processor or processing module configured to: receive signaling containing information about light reflected off suspended matter in a liquid and sensed by a linear sensor array having rows and columns of optical elements; and determine corresponding signaling containing information about a concentration of a parameter of the liquid, based upon the signaling received
2. Apparatus according to claim 1 , wherein the parameter is turbidity of the liquid.
3. Apparatus according to claim 1 , wherein the apparatus comprises the linear sensor array.
4. Apparatus according to claim 3, wherein the linear sensor array comprises a linear photodiode array.
5. Apparatus according to claim 3, wherein the linear sensor array comprises a linear CCD array.
6. Apparatus according to claim 3, wherein the linear sensor array comprises a linear CMOS array.
7. Apparatus according to claim 3, wherein the linear sensor array comprises a closed cylinder sensor array having a three-dimensional cylindrical array of the rows and columns of the optical elements.
8. Apparatus according to claim 1 , wherein the apparatus is a turbidity sensor.
9. Apparatus according to claim 1 , wherein the apparatus comprises a quasi- collimated light source having a length and being configured to provide the light, including quasi-collimated light, along a corresponding length of the linear sensor array.
10. Apparatus according to claim 1 , wherein the signal processor or processing module is configured to determine the parameter based upon an attenuation of an optical signal sensed across the linear sensor array, including along the length and width of the linear sensor array.
11 . Apparatus according to claim 1 , wherein the linear sensor array comprises a two-dimensional array of the optical elements that are individually addressable.
12. Apparatus according to claim 2, wherein the signal processor or processing module is configured to determine the turbidity based upon a spatial gradient of an optical signal sensed across the linear sensor array that contains information about the concentration of the turbidity.
13. Apparatus according to claim 12, wherein the optical elements are individually addressable by the signal processor or processing module.
14. Apparatus according to claim 12, wherein either the rows or the columns of the optical elements are connected in parallel and addressable by the signal processor or processing module; the apparatus may include a transmission photodiode located at an end of the linear sensor array, opposite the light source, configured to respond to the light reflected off the suspended matter and provide transmission photodiode signaling containing information about the same; and the signal processor or processing module may be configured to receive the photodiode signaling and correct the corresponding signaling for drift or the inner filter effect.
15. A method comprising: receiving, with a signal processor or processing module, signaling containing information about light reflected off suspended matter in a liquid and sensed by a linear sensor array having rows and columns of optical elements; and determining, with the signal processor or processing module, corresponding signaling containing information about a concentration of a parameter of the liquid, based upon the signaling received
16. A method according to claim 15, wherein the parameter is turbidity of the liquid.
17. A method according to claim 15, wherein the method comprises configuring the linear sensor array as a linear photodiode array, a linear CCD array or a linear CMOS array.
18. A method according to claim 15, wherein the method comprises configuring the linear sensor array as a closed cylinder sensor array having a three- dimensional cylindrical array of the rows and columns of the optical elements.
19. A method according to claim 15, wherein the method comprises determining the parameter based upon an attenuation of an optical signal sensed across the linear sensor array.
20. A method according to claim 15, wherein the method comprises configuring a light source to provide the light, including using a quasi-collimated light source to provide quasi-collimated light.
21 . A turbidity sensor comprising: a quasi-collimated light source having a length and being configured to provide quasi-collimated light to a liquid sample; a linear sensor array having rows and columns of optical elements and configured to sense light reflected off suspended matter in the liquid sample along the length of the collimated light source and provide signaling containing information about the light reflected off the suspended matter; and a signal processor or processing module configured to: receive the signaling; and determine corresponding signaling containing information about a concentration of turbidity of the liquid, based upon the signaling received
22. A turbidity sensor according to claim 21 , wherein the linear sensor array comprises a linear photodiode array, a linear CCD array, or a linear CMOS array.
23. A turbidity sensor according to claim 21 , wherein the signal processor or processing module is configured to determine the turbidity based upon an attenuation of an optical signal sensed across the linear sensor array, including along the length and width of the linear sensor array.
24. A turbidity sensor according to claim 21 , wherein the signal processor or processing module is configured to determine the turbidity based upon a spatial gradient of an optical signal sensed across the linear sensor array that contains information about the concentration of the turbidity.
PCT/US2021/033083 2020-05-20 2021-05-19 Extended solid angle turbidity sensor Ceased WO2021236720A1 (en)

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CA3178563A CA3178563C (en) 2020-05-20 2021-05-19 Extended solid angle turbidity sensor
JP2022571196A JP7451767B2 (en) 2020-05-20 2021-05-19 Turbidity sensor with extended solid angle
CN202180036389.3A CN115667886B (en) 2020-05-20 2021-05-19 Extended stereo turbidity sensor
AU2021276375A AU2021276375B2 (en) 2020-05-20 2021-05-19 Extended solid angle turbidity sensor
BR112022023418-0A BR112022023418B1 (en) 2020-05-20 2021-05-19 Turbidity sensor and method for determining a turbidity concentration.
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Families Citing this family (1)

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Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050219526A1 (en) * 2003-01-17 2005-10-06 Hong Peng Method and apparatus for monitoring biological substance
US20090230288A1 (en) * 2006-11-04 2009-09-17 Leopold Kostal Gmbh & Co. Kg Method for the operation of a photoelectric sensor array
US20170241893A1 (en) * 2016-02-19 2017-08-24 Research Triangle Institute Devices, systems and methods for detecting particles
US20180251713A1 (en) * 2017-03-01 2018-09-06 Fluidion Sas Field-deployable Multiplexed Sampling and Monitoring Device and Bacterial Contamination Measurement Method

Family Cites Families (154)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2554321A (en) * 1948-10-29 1951-05-22 Socony Vacuum Oil Co Inc Measurement of fluorescence
US3967113A (en) 1974-12-05 1976-06-29 Baxter Laboratories, Inc. Wavelength-corrected spectrofluorometer
US4058732A (en) 1975-06-30 1977-11-15 Analytical Radiation Corporation Method and apparatus for improved analytical fluorescent spectroscopy
US4084905A (en) 1976-03-11 1978-04-18 Canadian Patents & Development Limited Apparatus for detecting and measuring fluorescence emission
US4160914A (en) * 1977-12-16 1979-07-10 Monitek, Inc. Apparatus for measuring of particulate scattering in fluids
US4193057A (en) 1978-03-20 1980-03-11 Bunker Ramo Corporation Automatic deployment of horizontal linear sensor array
US4178512A (en) 1978-07-21 1979-12-11 Impulsphysik Gmbh Deepwater in-situ fluorometer
JPS59107239A (en) * 1982-12-10 1984-06-21 Mitsubishi Electric Corp Water quality measuring instrument
US4942303A (en) 1989-01-31 1990-07-17 Associated Universities, Inc. Computer controlled fluorometer device and method of operating same
US4937457A (en) 1989-02-10 1990-06-26 Slm Instruments, Inc. Picosecond multi-harmonic fourier fluorometer
WO1990009637A1 (en) * 1989-02-13 1990-08-23 Research Corporation Technologies, Inc. Method and means for parallel frequency acquisition in frequency domain fluorometry
US5059811A (en) * 1990-08-30 1991-10-22 Great Lakes Instruments, Inc. Turbidimeter having a baffle assembly for removing entrained gas
US5175596A (en) * 1990-10-23 1992-12-29 Venturedyne, Ltd. Liquid nephelometer
US5252818A (en) 1991-08-22 1993-10-12 Vision Ten, Inc. Method and apparatus for improved scanner accuracy using a linear sensor array
US5294799A (en) 1993-02-01 1994-03-15 Aslund Nils R D Apparatus for quantitative imaging of multiple fluorophores
US5436476A (en) * 1993-04-14 1995-07-25 Texas Instruments Incorporated CCD image sensor with active transistor pixel
PT101290B (en) 1993-06-18 2000-10-31 Fernandes Jose Guilherme Da Cu FLUOROMETER FOR THE MEDICATION OF THE CONCENTRATION OF EYE LOCAL FLUOROPHORES
US5426306A (en) 1993-10-21 1995-06-20 Associated Universities, Inc. Fast repetition rate (FRR) fluorometer and method for measuring fluorescence and photosynthetic parameters
US5486693A (en) 1994-02-17 1996-01-23 Thermedics Detection Inc. Detection of turbid contaminants in containers by detecting scattered radiant energy
US5671307A (en) * 1995-04-10 1997-09-23 Universite Laval Use of a temperature gradient to impose a chirp on a fibre bragg grating
US5818582A (en) 1996-09-19 1998-10-06 Ciencia, Inc. Apparatus and method for phase fluorometry
US5994707A (en) 1997-03-18 1999-11-30 Physical Optics Corporation Modular fiber optic fluorometer and method of use thereof
ATE514072T1 (en) 1997-05-05 2011-07-15 Chemometec As METHOD FOR DETERMINING PARTICLES IN A LIQUID SAMPLE
ZA984976B (en) 1997-06-11 1999-04-19 Nalco Chemical Co Solid-state fluorometer and methods of use therefore
US20020158212A1 (en) * 1998-04-17 2002-10-31 French Todd E. Apparatus and methods for time-resolved optical spectroscopy
US5981957A (en) * 1997-10-27 1999-11-09 Systems&Processes Engineering Corporation Signal generation and mixing electronics for frequency-domain lifetime and spectral fluorometry
US6070093A (en) * 1997-12-02 2000-05-30 Abbott Laboratories Multiplex sensor and method of use
JP2002502129A (en) * 1998-02-02 2002-01-22 ユニアックス コーポレイション Organic diodes with switchable photoelectric sensitivity
WO1999058953A1 (en) 1998-05-08 1999-11-18 Sequoia Scientific, Inc. Device for measuring particulate volume and mean size in water
US6447724B1 (en) * 1998-08-11 2002-09-10 Caliper Technologies Corp. DNA sequencing using multiple fluorescent labels being distinguishable by their decay times
WO2000009753A1 (en) 1998-08-11 2000-02-24 Caliper Technologies Corp. Methods and systems for sequencing dna by distinguishing the decay times of fluorescent probes
CA2379711A1 (en) 1999-07-02 2001-01-25 Conceptual Mindworks, Inc Organic semiconductor recognition complex and system
US6323495B1 (en) 1999-09-24 2001-11-27 Umm Electronics, Inc. Method and apparatus for the determination of phase delay in a lifetime fluorometer without the use of lifetime standards
US6852986B1 (en) 1999-11-12 2005-02-08 E. I. Du Pont De Nemours And Company Fluorometer with low heat-generating light source
US6426505B1 (en) 2000-01-19 2002-07-30 University Of Maryland Biotechnology Institute Phase-modulation fluorometer and method for measuring nanosecond lifetimes using a lock-in amplifier
US7875442B2 (en) * 2000-03-24 2011-01-25 Eppendorf Array Technologies Identification and quantification of a plurality of biological (micro)organisms or their components
US6573991B1 (en) * 2000-04-26 2003-06-03 Martin Paul Debreczeny Self-compensating radiation sensor with wide dynamic range
US6369894B1 (en) 2000-05-01 2002-04-09 Nalco Chemical Company Modular fluorometer
FR2817346B1 (en) 2000-11-29 2008-11-14 Edouard Nau METHOD FOR DETECTING AND IMAGING POLLUTANTS, ESPECIALLY LIQUID MEDIA, BY LASER INDUCED FLUORESCENCE AND / OR ABSORPTION AND ASSOCIATED DEVICES
WO2002068932A2 (en) 2001-02-23 2002-09-06 Genicon Sciences Corporation Methods for providing extended dynamic range in analyte assays
US7046347B1 (en) * 2001-03-30 2006-05-16 Amend John R Instrument with colorimeter and sensor inputs for interfacing with a computer
US7183050B2 (en) 2001-04-18 2007-02-27 Krull Ulrich J Gradient resolved information platform
FR2824139B1 (en) * 2001-04-27 2003-05-30 Commissariat Energie Atomique LUMINESCENCE MEASURING DEVICE WITH PREFILTRE EFFECT ELIMINATION
US6929730B2 (en) 2001-05-01 2005-08-16 Cheng Sheng Lee Two dimensional microfluidic gene scanner
KR20040018378A (en) * 2001-05-23 2004-03-03 하크 컴퍼니 Optical turbidimeter with a lens tube
WO2003002959A1 (en) 2001-06-15 2003-01-09 Mj Research, Inc. Controller for a fluorometer
US6670617B2 (en) 2001-06-28 2003-12-30 Ondeo Nalco Company Mirror fluorometer
DK1412725T3 (en) * 2001-06-29 2019-03-25 Meso Scale Technologies Llc Multi-well plates for LUMINESCENSE TEST MEASUREMENTS
EP1436595A1 (en) 2001-09-28 2004-07-14 Ciencia, Incorporated Method to improve sensitivity of molecular binding assays using phase-sensitive luminescence detection
US20030062485A1 (en) 2001-09-28 2003-04-03 Fernandez Salvador M. Compact multiwavelength phase fluorometer
US6811085B2 (en) 2001-10-26 2004-11-02 Symbol Technologies, Inc. Miniature imager
US6842243B2 (en) * 2001-12-10 2005-01-11 Apprise Technologies, Inc. Turbidity sensor
US6894778B2 (en) 2002-04-23 2005-05-17 Hach Company Low detection limit turbidimeter
US7582882B2 (en) 2003-01-23 2009-09-01 Horiba Jobin Yvon, Inc. Solid state multi frequency fluorometric measurements system and method
US7095500B2 (en) 2004-01-30 2006-08-22 Nalco Company Interchangeable tip-open cell fluorometer
CA2584529C (en) 2004-11-24 2017-09-12 Garland Christian Misener Reflectometer and associated light source for use in a chemical analyzer
US20060257958A1 (en) 2005-05-13 2006-11-16 Pronucleotein Biotechnologies, Llc Magnetically-assisted test strip cartridge and method for using same
US20070128658A1 (en) * 2005-11-14 2007-06-07 Blackwell Helen E Fluorescent dyes, methods and uses thereof
EP1955033A4 (en) * 2005-11-30 2012-01-18 Microptix Technologies Llc An integrated sensing system approach for handheld spectral measurements
US20160121009A1 (en) * 2006-02-06 2016-05-05 Woods Hole Oceanographic Institution Optical Communication Systems and Methods
US7505132B2 (en) * 2006-03-23 2009-03-17 Hach Company Self calibrating measurement system
US7528951B2 (en) * 2006-03-23 2009-05-05 Hach Company Optical design of a measurement system having multiple sensor or multiple light source paths
US7786457B2 (en) 2006-06-28 2010-08-31 Alcon, Inc. Systems and methods of non-invasive level sensing for a surgical cassette
US7580128B2 (en) * 2006-11-01 2009-08-25 Finesse Solutions, Llc. Linear optical loss probe
JP5286599B2 (en) 2007-02-23 2013-09-11 サーモ ニトン アナライザーズ リミテッド ライアビリティ カンパニー Fast and accurate time-resolved spectroscopy with linear sensor arrays
US7599055B2 (en) * 2007-02-27 2009-10-06 Corning Incorporated Swept wavelength imaging optical interrogation system and method for using same
WO2008140874A1 (en) * 2007-05-09 2008-11-20 Dow Global Technologies Inc. System and method for high-throughput turbidity measurements
DE102007031480B4 (en) * 2007-07-06 2009-05-14 BSH Bosch und Siemens Hausgeräte GmbH Sensor device and method for detecting the turbidity of wash liquor
JP5481376B2 (en) * 2007-07-12 2014-04-23 ヴォルカノ コーポレイション Clock control method for optical coherence tomography
WO2009017721A2 (en) 2007-07-28 2009-02-05 Buglab Llc Particle sensor with wide linear range
EP2022859A1 (en) 2007-08-01 2009-02-11 Roche Diagnostics GmbH Method and device for determining the concentration of an analyte using measurement of fluorescence
KR100885927B1 (en) * 2007-10-16 2009-02-26 광주과학기술원 Fluorescence Life Measurement Method and Apparatus
US7920252B2 (en) 2007-10-19 2011-04-05 Xin Hua Hu Method and apparatus for spectrophotometric characterization of turbid materials
KR100903133B1 (en) 2007-12-17 2009-06-16 한국전자통신연구원 High Sensitivity Turbidity Sensor and Sensing Method Using Optical Cavity
WO2009088781A1 (en) * 2008-01-04 2009-07-16 Pion Inc. Methods and systems for in situ physicochemical property testing
US7738101B2 (en) * 2008-07-08 2010-06-15 Rashid Mavliev Systems and methods for in-line monitoring of particles in opaque flows
GB0813277D0 (en) 2008-07-18 2008-08-27 Lux Innovate Ltd Method to assess multiphase fluid compositions
EP2194381B1 (en) * 2008-12-03 2015-12-02 Roche Diagnostics GmbH Testing element with combined control and calibration zone
US8654319B2 (en) 2009-01-23 2014-02-18 University Of Maryland, Baltimore County Chlorophyll and turbidity sensor system
US8463083B2 (en) 2009-01-30 2013-06-11 Claudio Oliveira Egalon Side illuminated multi point multi parameter optical fiber sensor
KR101108276B1 (en) * 2009-02-02 2012-01-31 경북대학교 산학협력단 Multi Water Quality Monitoring Sensor
KR101105287B1 (en) * 2009-02-02 2012-01-17 경북대학교 산학협력단 Water quality monitoring sensor
US8211708B2 (en) * 2009-03-13 2012-07-03 Furukawa Electric Co., Ltd. Optical measuring device and method therefor
GB0906986D0 (en) * 2009-04-23 2009-06-03 Avacta Ltd Apparatus and method
CN101581668B (en) * 2009-06-04 2010-11-17 山东大学 A New Device and New Test Method for Eliminating the Inner Filter Effect in Fluorescence Measurement
WO2010147873A1 (en) * 2009-06-17 2010-12-23 Ysi Incorporated Wipeable conductivity probe and method of making same
DE102009027929B4 (en) * 2009-07-22 2021-05-12 Endress+Hauser Conducta Gmbh+Co. Kg Turbidity meter and a method for determining a concentration of a turbid substance
WO2011022677A1 (en) 2009-08-21 2011-02-24 Massachusetts Institute Of Technology Optical nanosensors comprising photoluminescent nanostructures
US8526472B2 (en) 2009-09-03 2013-09-03 Axsun Technologies, Inc. ASE swept source with self-tracking filter for OCT medical imaging
WO2011050249A1 (en) * 2009-10-23 2011-04-28 Bioptigen, Inc. Systems for comprehensive fourier domain optical coherence tomography (fdoct) and related methods
US8420996B2 (en) * 2009-12-23 2013-04-16 Nokia Corporation Intensity estimation using binary sensor array with spatially varying thresholds
US8661663B2 (en) * 2010-02-22 2014-03-04 University Of Houston Method for manufacturing a multimodal neural probe
US8721858B2 (en) 2010-03-12 2014-05-13 The Board Of Trustees Of The Leland Stanford Junior University Non-focusing tracers for indirect detection in electrophoretic displacement techniques
US8488122B2 (en) * 2010-05-05 2013-07-16 Ysi Incorporated Turbidity sensors and probes
SE1000804A1 (en) * 2010-07-30 2012-01-31 System and method for measuring optical properties of an elastic and inelastic scattering medium
US8717562B2 (en) * 2010-08-23 2014-05-06 Scattering Solutions, Inc. Dynamic and depolarized dynamic light scattering colloid analyzer
JP2012060912A (en) * 2010-09-15 2012-03-29 Sony Corp Nucleic acid amplification reactor, substrate used for nucleic acid amplification reactor and reaction method for amplifying nucleic acid
EP2630492B1 (en) * 2010-10-21 2018-03-07 Nexcelom Bioscience LLC Internal focus reference beads for imaging cytometry
JP2012118055A (en) * 2010-11-12 2012-06-21 Sony Corp Reaction treatment apparatus and reaction treatment method
WO2012099889A2 (en) 2011-01-17 2012-07-26 Biosynergetics, Inc. In-line flow meter
US20120287435A1 (en) * 2011-05-12 2012-11-15 Jmar Llc Automatic dilution for multiple angle light scattering (mals) instrument
TWI582408B (en) * 2011-08-29 2017-05-11 安美基公司 Method and apparatus for non-destructive detection - undissolved particles in a fluid
FI20115999A0 (en) * 2011-10-11 2011-10-11 Teknologian Tutkimuskeskus Vtt Oy Optical measurement
US9222888B2 (en) 2012-04-03 2015-12-29 Ut-Battelle, Llc Pulse amplitude modulated chlorophyll fluorometer
US9020202B2 (en) 2012-12-08 2015-04-28 Masco Canada Limited Method for finding distance information from a linear sensor array
CN104869887B (en) 2012-12-19 2018-03-23 皇家飞利浦有限公司 Frequency domain time resolved fluorometric method and system for plaque detection
US9140648B2 (en) 2013-03-12 2015-09-22 Ecolab Usa Inc. Fluorometer with multiple detection channels
MY187829A (en) 2013-11-29 2021-10-26 Mimos Berhad Luminescence based water quality sensors system
CN103630522A (en) * 2013-12-11 2014-03-12 中国科学院南京地理与湖泊研究所 Method for correcting and calibrating three-dimensional fluorescence data of colored soluble organic matters
US20170253902A1 (en) 2013-12-20 2017-09-07 Trojan Technologies Method for Assaying for Loss of an Organism in an Aqueous Liquid
US9863881B2 (en) 2014-01-15 2018-01-09 Purdue Research Foundation Methods for measuring concentrations of analytes in turbid solutions by applying turbidity corrections to raman observations
US20150276594A1 (en) 2014-03-26 2015-10-01 Intellectual Property Transfer, LLC Method and apparatus for measuring turbidity
EP4009032A1 (en) 2014-04-21 2022-06-08 Aber Instruments, Inc. Particle sensor with interferent discrimination
CA2957543A1 (en) 2014-08-08 2016-02-11 Quantum-Si Incorporated Optical system and assay chip for probing, detecting and analyzing molecules
CN106662519B (en) * 2014-08-20 2021-10-15 研究三角协会 Apparatus, system and method for detecting particles
CN107076670A (en) * 2014-09-19 2017-08-18 哈希公司 Scattering formula nephelometer with axially illumination and circular photodetector
US10184892B2 (en) * 2014-10-29 2019-01-22 Horiba Instruments Incorporated Determination of water treatment parameters based on absorbance and fluorescence
US20160178618A1 (en) 2014-12-17 2016-06-23 Stc.Unm 3d tissue model for spatially correlated analysis of biochemical, physiological and metabolic micro-environments
WO2016095008A1 (en) 2014-12-17 2016-06-23 Total E&P Canada Ltd. Apparatus, systems and methods for real-time solids content measurements
US10150680B1 (en) * 2015-01-05 2018-12-11 Sutro Connect Inc. Water monitoring device and method
US10088571B2 (en) 2015-02-17 2018-10-02 Florida Atlantic University Board Of Trustees Underwater sensing system
US9606059B2 (en) 2015-02-20 2017-03-28 Phytosynthetix Llc Phase synchronizing pulse amplitude modulation fluorometer
JP6314872B2 (en) 2015-02-25 2018-04-25 株式会社島津製作所 Method for determining the number of fluorescent components contained and a spectrofluorometer using the method for determining the number of fluorescent components contained
KR20180041688A (en) * 2015-08-03 2018-04-24 와이에스아이 인코포레이티드 Multi-excitation-multi-emission fluorescence spectrometer for multi-parameter water quality monitoring
US10690594B2 (en) * 2015-09-14 2020-06-23 OptikTechnik LLC Optical sensing device and method in a liquid treatment system
LU92827B1 (en) 2015-09-14 2017-03-20 Luxembourg Inst Science & Tech List Method for determining in-situ suspended sediment properties
CN105318898B (en) * 2015-10-21 2018-02-09 武汉理工大学 It is complete with weak reflecting grating sensing network demodulation system and method based on swept light source
BR112018067880B1 (en) * 2016-03-07 2022-11-22 Ysi, Inc OPTICAL NITRATE SENSOR AND METHOD FOR MULTIPARAMETER MEASUREMENT OF WATER QUALITY
BR112018068208B1 (en) * 2016-03-09 2023-12-05 Ysi, Inc. OPTICAL NITRATE SENSOR AND METHOD FOR MULTIPARAMETRIC MEASUREMENT OF WATER QUALITY
KR102527830B1 (en) * 2016-03-17 2023-05-02 벡톤 디킨슨 앤드 컴퍼니 Cell sorting using a high throughput fluorescence flow cytometer
US10365198B2 (en) * 2016-04-21 2019-07-30 Malvern Panalytical Limited Particle characterization
EP3355048B1 (en) * 2016-05-19 2021-05-05 Fuji Electric Co., Ltd. Water quality analyzer
GB2551993B (en) 2016-07-04 2019-09-11 Process Instruments Uk Ltd Sensor and measurement method
GB201614497D0 (en) * 2016-08-25 2016-10-12 Rs Hydro Ltd Water quality sensing
CN109690288A (en) * 2016-09-13 2019-04-26 巴斯夫涂料有限公司 Sensor for almost simultaneous measurement of transmission and/or forward scatter and/or re-emission of liquid samples and for simultaneous measurement of transmission and forward scatter or transmission and re-emission of liquid samples
US10393660B2 (en) * 2016-11-06 2019-08-27 JianFeng Zhang Apparatus and method for measuring concentration of materials in liquid or gas
US11073472B2 (en) 2016-11-14 2021-07-27 Siemens Healthcare Diagnostics Inc. Methods and apparatus for characterizing a specimen using pattern illumination
WO2018098260A1 (en) * 2016-11-23 2018-05-31 Ysi, Inc. Dual function fluorometer-absorbance sensor
US10036703B1 (en) * 2017-01-27 2018-07-31 The United States Of America, As Represented By The Secretary Of The Navy Portable laser biosensor
EP3370486A1 (en) * 2017-03-02 2018-09-05 ASML Netherlands B.V. Radiation source
FR3067460B1 (en) * 2017-06-08 2019-07-19 Commissariat A L'energie Atomique Et Aux Energies Alternatives METHOD FOR DETERMINING DECLINE TIMES OF A LUMINESCENCE SIGNAL
CN107144506B (en) 2017-06-21 2023-08-22 华南理工大学 Suspended matter dynamic monitoring method and device based on annular interweaved array
US10908000B2 (en) * 2017-07-07 2021-02-02 Ysi, Inc. Antifouling accessory for field deployed sensors and instruments
CA3072447A1 (en) * 2017-08-10 2019-02-14 Advanced Polymer Monitoring Technologies, Inc., Dba/ Fluence Analytics Devices and methods for characterization and control of biopolymers and synthetic polymers during manufacturing
CN107596461A (en) * 2017-09-15 2018-01-19 广州佩迈医学科技有限公司 A kind of external drainage management system
WO2019103994A1 (en) 2017-11-27 2019-05-31 The Government of the United State of America, as represented by the Secretary of the Navy Substrates with independently tunable topographies and chemistries for quantifying surface-induced cell behavior
CN108040092B (en) * 2017-11-28 2018-11-27 特斯联(北京)科技有限公司 A kind of management of Internet of Things big data and application platform towards garden
KR20190103784A (en) * 2018-02-28 2019-09-05 빌리브마이크론(주) Apparatus and method for photo sensing using multiple photo detector
US10857394B2 (en) * 2018-07-26 2020-12-08 Carnegie Mellon University Reconfigurable ultrasonically sculpted optical beam paths
JP7659314B2 (en) * 2018-10-04 2025-04-09 ファースト ライト ダイアグノスティックス, インコーポレイテッド Analytical Instruments
KR102908182B1 (en) * 2019-12-13 2026-01-05 삼성전자주식회사 Compact raman sensor, and apparatus for estimating bio-component using the same
CN111042866B (en) * 2019-12-30 2021-07-09 安徽惠洲地质安全研究院股份有限公司 Multi-physical-field cooperative water inrush monitoring method
WO2021236720A1 (en) * 2020-05-20 2021-11-25 Ysi, Inc. Extended solid angle turbidity sensor
EP4340635A4 (en) * 2021-05-18 2026-05-06 Luminated Glazings Llc Using scattering fields in a medium to redirect wave energy onto surfaces in shadow

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050219526A1 (en) * 2003-01-17 2005-10-06 Hong Peng Method and apparatus for monitoring biological substance
US20090230288A1 (en) * 2006-11-04 2009-09-17 Leopold Kostal Gmbh & Co. Kg Method for the operation of a photoelectric sensor array
US20170241893A1 (en) * 2016-02-19 2017-08-24 Research Triangle Institute Devices, systems and methods for detecting particles
US20180251713A1 (en) * 2017-03-01 2018-09-06 Fluidion Sas Field-deployable Multiplexed Sampling and Monitoring Device and Bacterial Contamination Measurement Method

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP4153970A4 *

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